The invention concerns a device and method for monitoring the integrity of filtering installations consisting of a filter housing (1) designed to perform integrity tests and for filtration, equipped with a plurality of filter elements (2, 3) and an electronic testing and monitoring unit (4) designed for monitoring and performing integrity tests, said filter elements (2, 3) having each a storage element and a communicating part (7) being connected to the monitoring and testing unit arranged in the filtering housing, whereon data of said electronic storage elements can be read. The invention also concerns a method for monitoring the integrity of filter installations by means of a plurality of filter elements (2, 3) in a filter housing (1) and of an electronic testing and monitoting unit designed to monitor and perform integrity tests, data stored by electronic storage elements (6) arranged on the filter elements (6) capable of being exchanged with the monitoring and testing unit, identification data and other data concerning the filter elements derived from the electronic storage elements (6) capable of being selected and of constituting the basis for integrity monitoring and testing.
|
1. An apparatus for monitoring the integrity of filtration systems comprising a filter housing which is provided for carrying out integrity tests and for filtration, said filter housing including two or more filter elements and an electronic monitoring and test unit which is provided for monitoring and for carrying out integrity tests, each filter element including an electronic memory element, having a communication part that is arranged in the filtration housing and is connected to the monitoring and test unit, and via which data can be read from the electronic memory elements; said apparatus further comprising at least one of (i) means for determining whether the filter elements in said filter housing are the correct filter elements and a means for inhibiting said apparatus if at least one filter element has been determined not to be correct and/or (ii) means for determining if limiting data has been reached by a filter element and a means for inhibiting said apparatus if at least one filter element has reached or exceeded said limiting data.
6. In a method for monitoring the integrity of filtration systems having two or more filter elements in one filter housing and having an electronic monitoring and test unit which is provided for monitoring and for carrying out the integrity tests, the improvement wherein data which is stored in electronic memory elements that are arranged on the filter elements is interchanged via a communication part with the monitoring and test unit, with identification data and further specific data comprising limiting data for the filter elements being read from the electronic memory elements and being used as the basis for further monitoring and for the integrity test, wherein said improvement further comprises evaluating the data in order to determine at least one of (i) whether the correct filter elements are installed in the filter housing and inhibiting the filter system if at least one filter element has been determined not to be correct and/or (ii) whether the limiting data has been reached by at least one filter element and inhibiting the filter system if at least one filter element has reached or exceeded the limiting data.
8. In a method for monitoring the integrity of filtration systems having two or more filter elements in one filter housing and having an electronic monitoring and test unit which is provided for monitoring and for carrying out the integrity tests, the improvement wherein data which is stored in electronic memory elements that are arranged on the filter elements is interchanged via a communication part with the monitoring and test unit, with identification data and further specific data for the filter elements being read from the electronic memory elements and being used as the basis for further monitoring and for the integrity test; wherein real test values which have been determined are stored in the memory elements and are used for evaluation when another measurement is carried out; said improved method comprising the following steps:
a) reading the data from the electronic memory elements for the filter elements,
b) evaluating the data in order to determine whether the correct filter elements are installed in the filter housing and/or whether the limiting data has been reached by at least one filter element,
c) inhibiting the filtration system if at least one filter element has been determined not to be correct and/or if at least one filter element has reached or exceeded the limiting data,
d) if no inhibiting is carried out on the basis of step (c), limit values (a) and production release values (b) for the respectively intended integrity test are added up,
e) inhibiting the filtration system if the sum of the production release values exceeds the sum of the limit values,
f) if no inhibiting is carried out on the basis of step (e), determining a maximum permissible tolerance value (cmax) for the intended integrity test and storing the maximum permissing tolerance value in the monitoring and test unit,
g) carrying out a collective integrity test,
h) comparing the real value (creal) of the integrity test as determined on the basis of step (g) with the sum of the production release values added up on the basis of step (d) and the maximum permissible tolerance value as determined on the basis of step (f),
i) inhibiting the filtration system if the real value (creal) has reached or exceeded the sum of the values based on steps (d) and (f).
2. The apparatus as claimed in
3. The apparatus as claimed in
4. The apparatus as claimed in
5. The apparatus as claimed in
7. The method as claimed in
9. The method as claimed in
10. The method as claimed in
11. The method as claimed in one of
12. The method as claimed in
13. The method as claimed in
14. The method as claimed in
15. The method as claimed in
16. The method as claimed in
|
The invention relates to an apparatus for monitoring the integrity of filtration systems comprising a filter housing which is provided for carrying out integrity tests and for filtration and has two or more filter elements and an electronic monitoring and test unit which is provided for monitoring and for carrying out integrity tests.
The invention also relates to a method for monitoring the integrity of filtration systems having two or more filter elements in one filter housing and having an electronic monitoring and test unit which is provided for monitoring and for carrying out the integrity tests.
DE 199 18 419 A1 discloses apparatuses for monitoring the integrity of filtration systems, which have a filter housing which is provided for carrying out integrity tests and for filtration and has two or more filter elements. Apparatuses such as these in this case have an electronic monitoring and test unit which is provided for monitoring and for carrying out the integrity tests, such as that which is also known from DE 39 17 856 A1, for example.
Apparatuses such as these, which have fundamentally been proven, have the disadvantage that, when using two or more filter elements in one filter housing, the electronic monitoring and test unit can in each case determine only overall or sum values for all the filter elements in a filter housing. Since, for example, the diffusion values which are measured in the production release are always lower than the validated limit value, a situation can arise in which a filter element exceeds the limit value without this being noticed. The individual production release values for the filter elements are ignored in apparatuses and methods such as these.
DE 694 01 006 T2 discloses a unit with a single replaceable filter. The unit has an electronic filter identification system with an electronic label on the filter and a reading device on the filter. The reading device is, however, connected to a monitoring unit for the filtration appliance, and this is influenced by the reading device. The electronic label, which is in the form of an electronic memory element, is used in the case of the known apparatus as a filter identification system. The aim of this is to determine whether the specified filter has been installed. Provision is also made for the number of operating hours of the filter to be stored and for the filtration appliance to be switched off when the maximum permissible number of operating hours has been reached. This document does not provide those skilled in the art with any information relating to the use of such units for monitoring the integrity of filtration systems and, in particular, the use of filter housings with two or more filter elements.
The object of the present invention is therefore to improve the known apparatuses for monitoring the integrity of filtration systems having two or more filter elements, such that the reliability is improved and the production release values for the individual filter elements can be taken into account.
This object is achieved in an apparatus for monitoring the integrity of filtration systems comprising a filter housing which is provided for carrying out integrity test and for filtration and has two or more filter elements and an electronic monitoring and test unit which is provided for monitoring and for carrying out integrity test, in that the filter elements each have an electronic memory element, and in that a communication part is arranged in the filtration housing, and is connected to the monitoring and test unit, and via which data can be read from the electronic memory elements.
Since each filter element has an electronic memory element, the monitoring and test unit can read the production release values for the individual filter elements, and can take them into account in the integrity monitoring. The reliability of the integrity measurement can be considerably improved by the use of tested production values and production release values.
According to one preferred embodiment of the invention, data from the monitoring and test unit can be written to the electronic memory element.
Since the monitoring and test unit can write to the electronic memory elements, test data can be measured and written to the memory element throughout the life of the filter elements. The apparatus according to the invention is thus able to store multiple measurements, to transmit them and to process them by means of a reading device. This makes it possible, for example, to record test data changes, to process them and/or to signal them. The apparatus according to the invention thus makes it possible to identify and take into account any test data drift.
According to a further preferred embodiment of the invention, the electronic memory elements are in the form of transponders, and the communication part is in the form of an antenna for transmitting and receiving radio-frequency signals, so that data can be interchanged between the electronic monitoring and test unit and the transponders.
Transponders can be read from and written to, if required, without any contact being made, with no visual contact being required to the read/write station or to the communication part. User-defined data may in this case be stored without any problems on the microchip in the transponder. Furthermore, transponders can be protected by means of a password.
According to a further preferred embodiment of the invention, the electronic memory elements or transponders contain the following data for the respective filter element: identification data, data limiting use and/or production release values for a pressure maintenance test and/or diffusion test and/or bubble point test and/or water intrusion test.
Since the identification data and the data which limits use, such as the life, maximum permissible number of regeneration or sterilization cycles, and limit values for the individual filter elements are permanently stored in the electronic memory elements, the installation of incorrect filters is rapidly identified, and transmission errors in the limiting data to the monitoring and test unit are reliably prevented. Storage of the production release values for the known integrity tests further improves the reliability and accuracy of the integrity tests.
According to a further preferred embodiment of the invention, the electronic memory element for each filter element has an individual address of an address identifier which enables a reading and/or transmitting process. The individual addresses with an address identifier allow the electronic memory elements for the individual filter elements to be read and written to specifically.
In principle, it is also possible for the filter housing to have only one filter element instead of two or more filter elements.
The known methods for monitoring the integrity of filtration systems having two or more filter elements have the disadvantages mentioned above.
A further object of the invention is thus to improve the known methods such that possible errors in the monitoring of the integrity of filtration systems having two or more filter elements in one filter housing are reduced, and the reliability of the monitoring is improved.
This object is achieved in a method for monitoring the integrity of filtration systems having two or more filter elements in one filter housing and having an electronic monitoring and test unit which is provided for monitoring and for carrying out the integrity test, in that data which is stored in electronic memory elements that are arranged on the filter elements is interchanged via a communication part with the monitoring and test unit, with identification data and further specific data for the filter elements being read from the electronic memory elements and being used as the basis for further monitoring and for the integrity test.
The storage of specific data for the filter elements and the reading and supplying of the data to the monitoring and test unit considerably improve the reliability of the integrity test.
According to one preferred embodiment of the invention, real test values which have been determined are stored in the memory elements and are used for evaluation when another measurement is carried out.
The storage and reading of real test values additionally improves the analysis and assessment of the measurement results.
According to a further preferred embodiment of the invention, the monitoring and integrity method comprises the following steps:
The steps described above on the one hand reduce the possibility of faults in the integrity of the filtration system, and on the other hand ensure with better accuracy that the filtration system is inhibited when limit values or maximum permissible tolerance values are exceeded (diffusion and/or pressure drop and/or water intrusion limit value) or are undershot (bubble point and/or bubble pressure point limit value).
According to a further embodiment of the invention, the real value from a collective integrity test of all of the filter elements is stored, and its result is taken into account in another integrity test.
If multiple measurements are carried out, changes can thus be identified and conclusions can be drawn about the behavior of the filtration system.
According to a further embodiment of the invention, the status of the system is monitored by additional steps for the accumulated reading of data for the filtration time and/or for the cycles for regeneration and sterilization by means of the monitoring and test unit into the electronic memory elements.
According to a further preferred embodiment of the invention, any test data drift is determined by comparison of the stored real values, and the further integrity behavior of the filter elements is predicted using an algorithm, with replacement of filter elements being initiated shortly before it is predicted that the limit values will be exceeded.
This makes it possible to react, and to replace the filter elements, even before the limit values are reached or exceeded. This reliably avoids the production of scrap filtrate or filtrate with undesirable values.
The system according to the invention reads and/or writes measured and/or stored data which is available and/or stored in the memory element, and/or is intended to be stored in the memory element. The system and the apparatus can measure test data throughout the life of the filter elements, and/or can store test data in the memory element. The system according to the invention is thus able to store multiple measurements, to transmit them, and to process them by means of a reading device. The system according to the invention can thus record test data changes, can process them, and/or signal them. The system according to the invention is thus able to record, to process and to signal a test data drift from the limit value and/or start value. The system can therefore compare any test data drift with a predetermined permissible test data drift and, if appropriate, can stop the system and/or can prevent the start of filtration. This capability is used in particular for multiple filter element systems, as well as for individual elements and/or tangential flow filter elements.
Test data drift processing of the system according to the invention can also be used to predict when the filter installation and/or filter system will fall below or exceed the limit value. The system according to the invention can thus either process the data from a multiple measurement in the form of a graphic and/or can signal on the basis of a predetermined algorithm when the filter system must be replaced; this is done either as a result of limit values being exceeded or undershot, and/or by blocking and/or by other predetermined process parameters. The system according to the invention can also trigger an alarm, which can lead to replacement of the filter elements, since the filter elements will fall below or exceed the limit values when they are next used.
Further details of the invention will become evident from the following detailed description and from the attached drawings, in which preferred embodiments of the invention are illustrated by way of example.
In the drawings:
An apparatus for monitoring the integrity of filtration systems essentially comprises a filter housing 1, a first filter element 2 and a filter element 3, or two or more filter elements 2, 3, and an electronic monitoring and test unit 4.
The monitoring and test unit 4 is connected in a known manner via lines, which are not illustrated, to sensors and actuators, which are not illustrated, for monitoring and measuring the integrity of the filter elements 2, 3 or of the filtration system.
The filter elements 2, 3 each have a transponder 6 at their upper ends 5. The transponder 6 essentially comprises a microchip, which is not illustrated, as an electronic memory element, and a coil which forms the receiving and transmitting antenna. The transponder 6 is in the form of a read/write transponder and can be protected by means of a password.
A communication part which is in the form of an antenna 7 and is connected to the monitoring and test unit 4 is arranged adjacent to the transponders 6 on the filter housing 1. The antenna 7 is designed to transmit and receive radio-frequency signals, so that data can be interchanged between the electronic monitoring and test unit 4 and the transponders 6.
The medium to be filtered is supplied to the filter housing 1 via a supply line 8, and the filtrate is carried away via a line 9.
The monitoring and test unit 4 uses the communication part and the antenna 7 to read test and/or product data from individual and/or from two or more filter elements 2, 3, and from their transponders 6. The test and/or product data is processed by the monitoring and test unit 4.
If there are two or more filter elements 2, 3, the data, for example integrity values, from all of the transponders 6 or memory elements is read individually and is added. The sum of all of the limit values gives the limit value for the integrity test before or after the use of the multiple filter system. The limit values which are stored in the transponder 6 may be the values measured during the production release (production release values) and/or the limit values a as determined by validation procedures. In this case, the limit values relate to all the integrity test methods, for example a pressure drop test, a diffusion test, a bubble point test or bubble pressure point test and/or a water intrusion test. If the measured limit value differs from the predetermined limit value, the start of the filtration process is stopped, and the filtration system is inhibited.
Limit value fluctuations during the measurements may be recorded and compensated for by means of a predetermined algorithm in the system according to the invention and/or, if required, they may be predetermined as a tolerance. The predetermined tolerance relating to the determined and/or predetermined limit value may be established by validation or qualification. During the reading process, the product characteristic data for each individual filter element is also checked, and is compared with predetermined data. If any discrepancies are found, the start of the filtration process is prevented and, if appropriate, an alarm is triggered.
Multiple filters comprising a filter housing 1 and/or a filter system with 12 filter elements 2, 3, which are tested for integrity by means of the pressure drop and/or diffusion test. This test is carried out before and/or after the filtration. In this case, the maximum pressure drop and/or diffusion limit values (as specified by the filter manufacturer) for each individual filter element are normally added to form an overall limit value, for example 12×45 ml/min diffusion limit value, that is to say a total limit value of 540 ml/min. The limit value a of 45 ml/min was determined by validation tests, and is a fixed value. This value often includes a safety margin, which is often not reached during the production release. Test values below the limit value a are measured relatively frequently. The invention now uses the actually measured data from the production release, the production release values b, and stores these in the individual electronic memory element or transponder 6 for the filter elements 2, 3. This is illustrated in the following table.
Production
Possible fault
Filter
Limit value a
release value b
source
element No.
(ml/min)
(ml/min)
(ml/min)
1
45
30
30
2
45
26
26
3
45
30
30
4
45
29
29
5
45
29
29
6
45
26
26
7
45
30
30
8
45
28
28
9
45
28
28
10
45
29
29
11
45
27
27
12
45
27
65
Total
540
339
377
The diffusion values or production release values b which are measured during the production release are always less than the validated limit value a, so that a situation can arise in known systems in which a filter element exceeds the limit value a without this being noticed. The integrity test set or the monitoring and test unit 4 measures only the sum of all the filter elements (377 ml/min) and compares this data with the sum of all the limit values a (540 ml/min). In this case, the filter system would pass the test, although this would be incorrect since a single filter element had exceeded the limit value of 45 ml/min by being at 65 ml/min. This cannot be detected in the total. The present invention now uses the tested production release values b and stores each measured value in the memory element or transponder 6 for the respective filter element 2, 3. This test data is read during use of the filter elements 2, 3 and is combined as a limit value, in the example 339 ml/min. If one filter element now exceeds the limit value, this is immediately evident, and can thus be recorded.
The maximum step value as the difference between the limit value a and the production release value b for the filter element 2 with the highest diffusion value may be regarded as the tolerance. For example, the maximum limit value for two 30″ filter elements 2, 3 is 90 ml/min. The value actually measured in production is 25 ml/min for one filter element 3 and 26 ml/min for the other filter element 2. The maximum step value or (individual) tolerance value is now 45 ml/min minus 26 ml/min=19 ml/min. This (individual) tolerance value c1 is now added to the measured total diffusion or sum of the individual production release values b in order to determine the maximum permissible tolerance value cmax and the maximum permissible diffusion value for the overall system, that is to say 25 ml/min+26 ml/min+19 ml/min=70 ml/min. These values are summarized in the following table.
Limit
Production
Tolerance
value a
release value b
value c
Filter element
(ml/min)
(ml/min)
(ml/min)
1. Filter
45
26
a − b = 19
element 2
2. Filter
45
25
a − b = 20
element 3
Σ
90
51
cmax = Σb + c1 = 70
By way of example,
Oldendorf, Christian, Baumfalk, Reinhard, Reif, Oscar-Werner, Jornitz, Maik, Lausch, Ralf
Patent | Priority | Assignee | Title |
10595887, | Dec 28 2017 | Cilag GmbH International | Systems for adjusting end effector parameters based on perioperative information |
10617603, | Jan 22 2016 | Baxter International Inc.; BAXTER HEALTHCARE SA | Sterile solutions product bag |
10695081, | Dec 28 2017 | Cilag GmbH International | Controlling a surgical instrument according to sensed closure parameters |
10755813, | Dec 18 2017 | Cilag GmbH International | Communication of smoke evacuation system parameters to hub or cloud in smoke evacuation module for interactive surgical platform |
10758310, | Dec 28 2017 | Cilag GmbH International | Wireless pairing of a surgical device with another device within a sterile surgical field based on the usage and situational awareness of devices |
10772651, | Oct 30 2017 | Cilag GmbH International | Surgical instruments comprising a system for articulation and rotation compensation |
10849697, | Dec 28 2017 | Cilag GmbH International | Cloud interface for coupled surgical devices |
10892899, | Dec 28 2017 | Cilag GmbH International | Self describing data packets generated at an issuing instrument |
10892995, | Dec 28 2017 | Cilag GmbH International | Surgical network determination of prioritization of communication, interaction, or processing based on system or device needs |
10898622, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation system with a communication circuit for communication between a filter and a smoke evacuation device |
10932806, | Oct 30 2017 | Cilag GmbH International | Reactive algorithm for surgical system |
10932872, | Dec 28 2017 | Cilag GmbH International | Cloud-based medical analytics for linking of local usage trends with the resource acquisition behaviors of larger data set |
10943454, | Dec 28 2017 | Cilag GmbH International | Detection and escalation of security responses of surgical instruments to increasing severity threats |
10944728, | Dec 28 2017 | Cilag GmbH International | Interactive surgical systems with encrypted communication capabilities |
10959744, | Oct 30 2017 | Cilag GmbH International | Surgical dissectors and manufacturing techniques |
10966791, | Dec 28 2017 | Cilag GmbH International | Cloud-based medical analytics for medical facility segmented individualization of instrument function |
10973520, | Mar 28 2018 | Cilag GmbH International | Surgical staple cartridge with firing member driven camming assembly that has an onboard tissue cutting feature |
10980560, | Oct 30 2017 | Cilag GmbH International | Surgical instrument systems comprising feedback mechanisms |
10987178, | Dec 28 2017 | Cilag GmbH International | Surgical hub control arrangements |
11013563, | Dec 28 2017 | Cilag GmbH International | Drive arrangements for robot-assisted surgical platforms |
11021275, | Jan 22 2016 | Baxter International Inc.; BAXTER HEALTHCARE SA | Method and machine for producing sterile solution product bags |
11026687, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising clip advancing systems |
11026712, | Oct 30 2017 | Cilag GmbH International | Surgical instruments comprising a shifting mechanism |
11026713, | Oct 30 2017 | Cilag GmbH International | Surgical clip applier configured to store clips in a stored state |
11026751, | Dec 28 2017 | Cilag GmbH International | Display of alignment of staple cartridge to prior linear staple line |
11045197, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising a movable clip magazine |
11045591, | Dec 28 2017 | Cilag GmbH International | Dual in-series large and small droplet filters |
11051836, | Oct 30 2017 | Cilag GmbH International | Surgical clip applier comprising an empty clip cartridge lockout |
11051876, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation flow paths |
11056244, | Dec 28 2017 | Cilag GmbH International | Automated data scaling, alignment, and organizing based on predefined parameters within surgical networks |
11058498, | Dec 28 2017 | Cilag GmbH International | Cooperative surgical actions for robot-assisted surgical platforms |
11069012, | Dec 28 2017 | Cilag GmbH International | Interactive surgical systems with condition handling of devices and data capabilities |
11071560, | Oct 30 2017 | Cilag GmbH International | Surgical clip applier comprising adaptive control in response to a strain gauge circuit |
11076921, | Dec 28 2017 | Cilag GmbH International | Adaptive control program updates for surgical hubs |
11090047, | Mar 28 2018 | Cilag GmbH International | Surgical instrument comprising an adaptive control system |
11096688, | Mar 28 2018 | Cilag GmbH International | Rotary driven firing members with different anvil and channel engagement features |
11096693, | Dec 28 2017 | Cilag GmbH International | Adjustment of staple height of at least one row of staples based on the sensed tissue thickness or force in closing |
11100631, | Dec 28 2017 | Cilag GmbH International | Use of laser light and red-green-blue coloration to determine properties of back scattered light |
11103268, | Oct 30 2017 | Cilag GmbH International | Surgical clip applier comprising adaptive firing control |
11109866, | Dec 28 2017 | Cilag GmbH International | Method for circular stapler control algorithm adjustment based on situational awareness |
11109878, | Oct 30 2017 | Cilag GmbH International | Surgical clip applier comprising an automatic clip feeding system |
11114195, | Dec 28 2017 | Cilag GmbH International | Surgical instrument with a tissue marking assembly |
11123070, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising a rotatable clip magazine |
11129611, | Mar 28 2018 | Cilag GmbH International | Surgical staplers with arrangements for maintaining a firing member thereof in a locked configuration unless a compatible cartridge has been installed therein |
11129636, | Oct 30 2017 | Cilag GmbH International | Surgical instruments comprising an articulation drive that provides for high articulation angles |
11132462, | Dec 28 2017 | Cilag GmbH International | Data stripping method to interrogate patient records and create anonymized record |
11141160, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising a motor controller |
11147607, | Dec 28 2017 | Cilag GmbH International | Bipolar combination device that automatically adjusts pressure based on energy modality |
11148098, | Jul 27 2017 | DDP SPECIALTY ELECTRONIC MATERIALS US, LLC | Spiral wound membrane module including integrated differential pressure monitoring |
11160605, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation sensing and motor control |
11166716, | Mar 28 2018 | Cilag GmbH International | Stapling instrument comprising a deactivatable lockout |
11166772, | Dec 28 2017 | Cilag GmbH International | Surgical hub coordination of control and communication of operating room devices |
11179175, | Dec 28 2017 | Cilag GmbH International | Controlling an ultrasonic surgical instrument according to tissue location |
11179204, | Dec 28 2017 | Cilag GmbH International | Wireless pairing of a surgical device with another device within a sterile surgical field based on the usage and situational awareness of devices |
11179208, | Dec 28 2017 | Cilag GmbH International | Cloud-based medical analytics for security and authentication trends and reactive measures |
11197668, | Mar 28 2018 | Cilag GmbH International | Surgical stapling assembly comprising a lockout and an exterior access orifice to permit artificial unlocking of the lockout |
11202570, | Dec 28 2017 | Cilag GmbH International | Communication hub and storage device for storing parameters and status of a surgical device to be shared with cloud based analytics systems |
11207067, | Mar 28 2018 | Cilag GmbH International | Surgical stapling device with separate rotary driven closure and firing systems and firing member that engages both jaws while firing |
11207090, | Oct 30 2017 | Cilag GmbH International | Surgical instruments comprising a biased shifting mechanism |
11213294, | Mar 28 2018 | Cilag GmbH International | Surgical instrument comprising co-operating lockout features |
11213359, | Dec 28 2017 | Cilag GmbH International | Controllers for robot-assisted surgical platforms |
11214500, | Jan 15 2018 | DDP SPECIALTY ELECTRONIC MATERIALS US, LLC | Spiral wound assembly with integrated flow restrictor and sensor |
11219453, | Mar 28 2018 | Cilag GmbH International | Surgical stapling devices with cartridge compatible closure and firing lockout arrangements |
11229436, | Oct 30 2017 | Cilag GmbH International | Surgical system comprising a surgical tool and a surgical hub |
11234756, | Dec 28 2017 | Cilag GmbH International | Powered surgical tool with predefined adjustable control algorithm for controlling end effector parameter |
11253315, | Dec 28 2017 | Cilag GmbH International | Increasing radio frequency to create pad-less monopolar loop |
11257589, | Dec 28 2017 | Cilag GmbH International | Real-time analysis of comprehensive cost of all instrumentation used in surgery utilizing data fluidity to track instruments through stocking and in-house processes |
11259806, | Mar 28 2018 | Cilag GmbH International | Surgical stapling devices with features for blocking advancement of a camming assembly of an incompatible cartridge installed therein |
11259807, | Feb 19 2019 | Cilag GmbH International | Staple cartridges with cam surfaces configured to engage primary and secondary portions of a lockout of a surgical stapling device |
11259830, | Mar 08 2018 | Cilag GmbH International | Methods for controlling temperature in ultrasonic device |
11266468, | Dec 28 2017 | Cilag GmbH International | Cooperative utilization of data derived from secondary sources by intelligent surgical hubs |
11272931, | Feb 19 2019 | Cilag GmbH International | Dual cam cartridge based feature for unlocking a surgical stapler lockout |
11273001, | Dec 28 2017 | Cilag GmbH International | Surgical hub and modular device response adjustment based on situational awareness |
11278280, | Mar 28 2018 | Cilag GmbH International | Surgical instrument comprising a jaw closure lockout |
11278281, | Dec 28 2017 | Cilag GmbH International | Interactive surgical system |
11284936, | Dec 28 2017 | Cilag GmbH International | Surgical instrument having a flexible electrode |
11291444, | Feb 19 2019 | Cilag GmbH International | Surgical stapling assembly with cartridge based retainer configured to unlock a closure lockout |
11291445, | Feb 19 2019 | Cilag GmbH International | Surgical staple cartridges with integral authentication keys |
11291465, | Oct 30 2017 | Cilag GmbH International | Surgical instruments comprising a lockable end effector socket |
11291495, | Dec 28 2017 | Cilag GmbH International | Interruption of energy due to inadvertent capacitive coupling |
11291510, | Oct 30 2017 | Cilag GmbH International | Method of hub communication with surgical instrument systems |
11298129, | Feb 19 2019 | Cilag GmbH International | Method for providing an authentication lockout in a surgical stapler with a replaceable cartridge |
11298130, | Feb 19 2019 | Cilag GmbH International | Staple cartridge retainer with frangible authentication key |
11298148, | Mar 08 2018 | Cilag GmbH International | Live time tissue classification using electrical parameters |
11304699, | Dec 28 2017 | Cilag GmbH International | Method for adaptive control schemes for surgical network control and interaction |
11304720, | Dec 28 2017 | Cilag GmbH International | Activation of energy devices |
11304745, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation sensing and display |
11304763, | Dec 28 2017 | Cilag GmbH International | Image capturing of the areas outside the abdomen to improve placement and control of a surgical device in use |
11308075, | Dec 28 2017 | Cilag GmbH International | Surgical network, instrument, and cloud responses based on validation of received dataset and authentication of its source and integrity |
11311306, | Dec 28 2017 | Cilag GmbH International | Surgical systems for detecting end effector tissue distribution irregularities |
11311342, | Oct 30 2017 | Cilag GmbH International | Method for communicating with surgical instrument systems |
11317915, | Feb 19 2019 | Cilag GmbH International | Universal cartridge based key feature that unlocks multiple lockout arrangements in different surgical staplers |
11317919, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising a clip crimping system |
11317937, | Mar 08 2018 | Cilag GmbH International | Determining the state of an ultrasonic end effector |
11324557, | Dec 28 2017 | Cilag GmbH International | Surgical instrument with a sensing array |
11331100, | Feb 19 2019 | Cilag GmbH International | Staple cartridge retainer system with authentication keys |
11331101, | Feb 19 2019 | Cilag GmbH International | Deactivator element for defeating surgical stapling device lockouts |
11337746, | Mar 08 2018 | Cilag GmbH International | Smart blade and power pulsing |
11344326, | Mar 08 2018 | Cilag GmbH International | Smart blade technology to control blade instability |
11357503, | Feb 19 2019 | Cilag GmbH International | Staple cartridge retainers with frangible retention features and methods of using same |
11364075, | Dec 28 2017 | Cilag GmbH International | Radio frequency energy device for delivering combined electrical signals |
11369377, | Jun 25 2019 | Cilag GmbH International | Surgical stapling assembly with cartridge based retainer configured to unlock a firing lockout |
11376002, | Dec 28 2017 | Cilag GmbH International | Surgical instrument cartridge sensor assemblies |
11382697, | Dec 28 2017 | Cilag GmbH International | Surgical instruments comprising button circuits |
11389164, | Dec 28 2017 | Cilag GmbH International | Method of using reinforced flexible circuits with multiple sensors to optimize performance of radio frequency devices |
11389188, | Mar 08 2018 | Cilag GmbH International | Start temperature of blade |
11399858, | Mar 08 2018 | Cilag GmbH International | Application of smart blade technology |
11406382, | Mar 28 2018 | Cilag GmbH International | Staple cartridge comprising a lockout key configured to lift a firing member |
11406390, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising interchangeable clip reloads |
11410259, | Dec 28 2017 | Cilag GmbH International | Adaptive control program updates for surgical devices |
11413042, | Oct 30 2017 | Cilag GmbH International | Clip applier comprising a reciprocating clip advancing member |
11419630, | Dec 28 2017 | Cilag GmbH International | Surgical system distributed processing |
11419667, | Dec 28 2017 | Cilag GmbH International | Ultrasonic energy device which varies pressure applied by clamp arm to provide threshold control pressure at a cut progression location |
11423007, | Dec 28 2017 | Cilag GmbH International | Adjustment of device control programs based on stratified contextual data in addition to the data |
11424027, | Dec 28 2017 | Cilag GmbH International | Method for operating surgical instrument systems |
11432885, | Dec 28 2017 | Cilag GmbH International | Sensing arrangements for robot-assisted surgical platforms |
11446052, | Dec 28 2017 | Cilag GmbH International | Variation of radio frequency and ultrasonic power level in cooperation with varying clamp arm pressure to achieve predefined heat flux or power applied to tissue |
11457944, | Mar 08 2018 | Cilag GmbH International | Adaptive advanced tissue treatment pad saver mode |
11464511, | Feb 19 2019 | Cilag GmbH International | Surgical staple cartridges with movable authentication key arrangements |
11464532, | Mar 08 2018 | Cilag GmbH International | Methods for estimating and controlling state of ultrasonic end effector |
11464535, | Dec 28 2017 | Cilag GmbH International | Detection of end effector emersion in liquid |
11464559, | Dec 28 2017 | Cilag GmbH International | Estimating state of ultrasonic end effector and control system therefor |
11471156, | Mar 28 2018 | Cilag GmbH International | Surgical stapling devices with improved rotary driven closure systems |
11504192, | Oct 30 2014 | Cilag GmbH International | Method of hub communication with surgical instrument systems |
11510741, | Oct 30 2017 | Cilag GmbH International | Method for producing a surgical instrument comprising a smart electrical system |
11517309, | Feb 19 2019 | Cilag GmbH International | Staple cartridge retainer with retractable authentication key |
11529187, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation sensor arrangements |
11534196, | Mar 08 2018 | Cilag GmbH International | Using spectroscopy to determine device use state in combo instrument |
11540855, | Dec 28 2017 | Cilag GmbH International | Controlling activation of an ultrasonic surgical instrument according to the presence of tissue |
11559307, | Dec 28 2017 | Cilag GmbH International | Method of robotic hub communication, detection, and control |
11559308, | Dec 28 2017 | Cilag GmbH International | Method for smart energy device infrastructure |
11564703, | Oct 30 2017 | Cilag GmbH International | Surgical suturing instrument comprising a capture width which is larger than trocar diameter |
11564756, | Oct 30 2017 | Cilag GmbH International | Method of hub communication with surgical instrument systems |
11564867, | Jan 22 2016 | Baxter International Inc.; BAXTER HEALTHCARE SA | Sterile solutions product bag |
11571234, | Dec 28 2017 | Cilag GmbH International | Temperature control of ultrasonic end effector and control system therefor |
11576677, | Dec 28 2017 | Cilag GmbH International | Method of hub communication, processing, display, and cloud analytics |
11589865, | Mar 28 2018 | Cilag GmbH International | Methods for controlling a powered surgical stapler that has separate rotary closure and firing systems |
11589888, | Dec 28 2017 | Cilag GmbH International | Method for controlling smart energy devices |
11589915, | Mar 08 2018 | Cilag GmbH International | In-the-jaw classifier based on a model |
11589932, | Dec 28 2017 | Cilag GmbH International | Usage and technique analysis of surgeon / staff performance against a baseline to optimize device utilization and performance for both current and future procedures |
11596291, | Dec 28 2017 | Cilag GmbH International | Method of compressing tissue within a stapling device and simultaneously displaying of the location of the tissue within the jaws |
11601371, | Dec 28 2017 | Cilag GmbH International | Surgical network determination of prioritization of communication, interaction, or processing based on system or device needs |
11602366, | Oct 30 2017 | Cilag GmbH International | Surgical suturing instrument configured to manipulate tissue using mechanical and electrical power |
11602393, | Dec 28 2017 | Cilag GmbH International | Surgical evacuation sensing and generator control |
11612408, | Dec 28 2017 | Cilag GmbH International | Determining tissue composition via an ultrasonic system |
11612444, | Dec 28 2017 | Cilag GmbH International | Adjustment of a surgical device function based on situational awareness |
11617597, | Mar 08 2018 | Cilag GmbH International | Application of smart ultrasonic blade technology |
11623773, | Jan 22 2016 | Baxter International Inc.; BAXTER HEALTHCARE SA | Method and machine for producing sterile solution product bags |
11633237, | Dec 28 2017 | Cilag GmbH International | Usage and technique analysis of surgeon / staff performance against a baseline to optimize device utilization and performance for both current and future procedures |
11648022, | Oct 30 2017 | Cilag GmbH International | Surgical instrument systems comprising battery arrangements |
11659023, | Dec 28 2017 | Cilag GmbH International | Method of hub communication |
11666331, | Dec 28 2017 | Cilag GmbH International | Systems for detecting proximity of surgical end effector to cancerous tissue |
11672605, | Dec 28 2017 | Cilag GmbH International | Sterile field interactive control displays |
11678881, | Dec 28 2017 | Cilag GmbH International | Spatial awareness of surgical hubs in operating rooms |
11678901, | Mar 08 2018 | Cilag GmbH International | Vessel sensing for adaptive advanced hemostasis |
11678927, | Mar 08 2018 | Cilag GmbH International | Detection of large vessels during parenchymal dissection using a smart blade |
11696760, | Dec 28 2017 | Cilag GmbH International | Safety systems for smart powered surgical stapling |
11696778, | Oct 30 2017 | Cilag GmbH International | Surgical dissectors configured to apply mechanical and electrical energy |
11701139, | Mar 08 2018 | Cilag GmbH International | Methods for controlling temperature in ultrasonic device |
11701162, | Mar 08 2018 | Cilag GmbH International | Smart blade application for reusable and disposable devices |
11701185, | Dec 28 2017 | Cilag GmbH International | Wireless pairing of a surgical device with another device within a sterile surgical field based on the usage and situational awareness of devices |
11707293, | Mar 08 2018 | Cilag GmbH International | Ultrasonic sealing algorithm with temperature control |
11712303, | Dec 28 2017 | Cilag GmbH International | Surgical instrument comprising a control circuit |
11737668, | Dec 28 2017 | Cilag GmbH International | Communication hub and storage device for storing parameters and status of a surgical device to be shared with cloud based analytics systems |
11744604, | Dec 28 2017 | Cilag GmbH International | Surgical instrument with a hardware-only control circuit |
11751872, | Feb 19 2019 | Cilag GmbH International | Insertable deactivator element for surgical stapler lockouts |
11751958, | Dec 28 2017 | Cilag GmbH International | Surgical hub coordination of control and communication of operating room devices |
11759224, | Oct 30 2017 | Cilag GmbH International | Surgical instrument systems comprising handle arrangements |
11771487, | Dec 28 2017 | Cilag GmbH International | Mechanisms for controlling different electromechanical systems of an electrosurgical instrument |
11775682, | Dec 28 2017 | Cilag GmbH International | Data stripping method to interrogate patient records and create anonymized record |
11779337, | Dec 28 2017 | Cilag GmbH International | Method of using reinforced flexible circuits with multiple sensors to optimize performance of radio frequency devices |
11786245, | Dec 28 2017 | Cilag GmbH International | Surgical systems with prioritized data transmission capabilities |
11786251, | Dec 28 2017 | Cilag GmbH International | Method for adaptive control schemes for surgical network control and interaction |
11793537, | Oct 30 2017 | Cilag GmbH International | Surgical instrument comprising an adaptive electrical system |
11801098, | Oct 30 2017 | Cilag GmbH International | Method of hub communication with surgical instrument systems |
11818052, | Dec 28 2017 | Cilag GmbH International | Surgical network determination of prioritization of communication, interaction, or processing based on system or device needs |
11819231, | Oct 30 2017 | Cilag GmbH International | Adaptive control programs for a surgical system comprising more than one type of cartridge |
11832840, | Dec 28 2017 | Cilag GmbH International | Surgical instrument having a flexible circuit |
11832899, | Dec 28 2017 | Cilag GmbH International | Surgical systems with autonomously adjustable control programs |
11839396, | Mar 08 2018 | Cilag GmbH International | Fine dissection mode for tissue classification |
11844545, | Mar 08 2018 | Cilag GmbH International | Calcified vessel identification |
11844579, | Dec 28 2017 | Cilag GmbH International | Adjustments based on airborne particle properties |
11857152, | Dec 28 2017 | Cilag GmbH International | Surgical hub spatial awareness to determine devices in operating theater |
11864728, | Dec 28 2017 | Cilag GmbH International | Characterization of tissue irregularities through the use of mono-chromatic light refractivity |
11864845, | Dec 28 2017 | Cilag GmbH International | Sterile field interactive control displays |
11871901, | May 20 2012 | Cilag GmbH International | Method for situational awareness for surgical network or surgical network connected device capable of adjusting function based on a sensed situation or usage |
11890065, | Dec 28 2017 | Cilag GmbH International | Surgical system to limit displacement |
11896322, | Dec 28 2017 | Cilag GmbH International | Sensing the patient position and contact utilizing the mono-polar return pad electrode to provide situational awareness to the hub |
11896443, | Dec 28 2017 | Cilag GmbH International | Control of a surgical system through a surgical barrier |
11903587, | Dec 28 2017 | Cilag GmbH International | Adjustment to the surgical stapling control based on situational awareness |
11903601, | Dec 28 2017 | Cilag GmbH International | Surgical instrument comprising a plurality of drive systems |
11911045, | Oct 30 2017 | Cilag GmbH International | Method for operating a powered articulating multi-clip applier |
11918302, | Dec 28 2017 | Cilag GmbH International | Sterile field interactive control displays |
11925350, | Feb 19 2019 | Cilag GmbH International | Method for providing an authentication lockout in a surgical stapler with a replaceable cartridge |
11925373, | Oct 30 2017 | Cilag GmbH International | Surgical suturing instrument comprising a non-circular needle |
11931027, | Mar 28 2018 | CILAG GMBH INTERNTIONAL | Surgical instrument comprising an adaptive control system |
11931110, | Dec 28 2017 | Cilag GmbH International | Surgical instrument comprising a control system that uses input from a strain gage circuit |
11937769, | Dec 28 2017 | Cilag GmbH International | Method of hub communication, processing, storage and display |
11937817, | Mar 28 2018 | Cilag GmbH International | Surgical instruments with asymmetric jaw arrangements and separate closure and firing systems |
11969142, | Dec 28 2017 | Cilag GmbH International | Method of compressing tissue within a stapling device and simultaneously displaying the location of the tissue within the jaws |
11969216, | Dec 28 2017 | Cilag GmbH International | Surgical network recommendations from real time analysis of procedure variables against a baseline highlighting differences from the optimal solution |
11986185, | Mar 28 2018 | Cilag GmbH International | Methods for controlling a surgical stapler |
11986233, | Mar 08 2018 | Cilag GmbH International | Adjustment of complex impedance to compensate for lost power in an articulating ultrasonic device |
11998193, | Dec 28 2017 | Cilag GmbH International | Method for usage of the shroud as an aspect of sensing or controlling a powered surgical device, and a control algorithm to adjust its default operation |
12053159, | Dec 28 2017 | Cilag GmbH International | Method of sensing particulate from smoke evacuated from a patient, adjusting the pump speed based on the sensed information, and communicating the functional parameters of the system to the hub |
12059124, | Dec 28 2017 | Cilag GmbH International | Surgical hub spatial awareness to determine devices in operating theater |
12059169, | Dec 28 2017 | Cilag GmbH International | Controlling an ultrasonic surgical instrument according to tissue location |
12059218, | Oct 30 2017 | Cilag GmbH International | Method of hub communication with surgical instrument systems |
12062442, | Dec 28 2017 | Cilag GmbH International | Method for operating surgical instrument systems |
12076010, | Dec 28 2017 | Cilag GmbH International | Surgical instrument cartridge sensor assemblies |
12096916, | Dec 28 2017 | Cilag GmbH International | Method of sensing particulate from smoke evacuated from a patient, adjusting the pump speed based on the sensed information, and communicating the functional parameters of the system to the hub |
12096985, | Dec 28 2017 | Cilag GmbH International | Surgical network recommendations from real time analysis of procedure variables against a baseline highlighting differences from the optimal solution |
12121255, | Oct 30 2017 | Cilag GmbH International | Electrical power output control based on mechanical forces |
12121256, | Mar 08 2018 | Cilag GmbH International | Methods for controlling temperature in ultrasonic device |
12127729, | Dec 28 2017 | Cilag GmbH International | Method for smoke evacuation for surgical hub |
12133660, | Dec 28 2017 | Cilag GmbH International | Controlling a temperature of an ultrasonic electromechanical blade according to frequency |
12133709, | Dec 28 2017 | Cilag GmbH International | Communication hub and storage device for storing parameters and status of a surgical device to be shared with cloud based analytics systems |
12133773, | Dec 28 2017 | Cilag GmbH International | Surgical hub and modular device response adjustment based on situational awareness |
12137991, | Dec 28 2017 | Cilag GmbH International | Display arrangements for robot-assisted surgical platforms |
12144518, | Dec 28 2017 | Cilag GmbH International | Surgical systems for detecting end effector tissue distribution irregularities |
7699989, | Oct 17 2006 | EMD Millipore Corporation | Powered cartridges and other devices within housings |
7785477, | Nov 22 2002 | Sartorius Stedim Biotech GmbH | Device, method and computer program product for carrying out a process for the filtration of fluids |
7796011, | Sep 26 2003 | VWS UK LIMITED | Water treatment apparatus |
7811365, | Oct 16 2006 | EMD Millipore Corporation | Wireless receptor for communications within housings |
7898495, | Mar 26 2008 | EMD Millipore Corporation | Antenna gasket for process housing |
7901570, | Oct 17 2006 | EMD Millipore Corporation | Powered cartridges and other devices within housings |
7969380, | Mar 26 2008 | EMD Millipore Corporation | Antenna gasket for process housings |
8007568, | Apr 12 2006 | EMD Millipore Corporation | Filter with memory, communication and pressure sensor |
8029679, | Oct 17 2006 | EMD Millipore Corporation | Powered cartridges and other devices within housings |
8084259, | Apr 12 2006 | EMD Millipore Corporation | Method of insuring the integrity of a filtering element |
8114204, | Oct 16 2006 | EMD Millipore Corporation | Wireless receptor for communications within housings |
8137983, | Apr 12 2006 | EMD Millipore Corporation | Method of maintaining a protein concentration at a tangential flow filter |
8147757, | Apr 12 2006 | EMD Millipore Corporation | Filter with memory, communication and concentration sensor |
8186870, | Oct 26 2004 | Sartorius Stedim Biotech GmbH | Device for agitating media |
8221522, | Apr 12 2006 | EMD Millipore Corporation | Filter with memory, communication and pressure sensor |
8298322, | Oct 16 2006 | EMD Millipore Corporation | Wireless receptor for communications within housings |
8298323, | Oct 16 2006 | EMD Millipore Corporation | Wireless receptor for communications within housings |
8303698, | Oct 16 2006 | EMD Millipore Corporation | Wireless receptor for communications within housings |
8383037, | Jul 16 2008 | EMD Millipore Corporation | Gamma hardened pharmaceutical devices |
8405508, | Aug 09 2006 | EMD Millipore Corporation | Use of gamma hardened RFID tags in pharmaceutical devices |
8497775, | Aug 09 2006 | EMD Millipore Corporation | Use of gamma hardened RFID tags in pharmaceutical devices |
8501119, | Mar 26 2008 | EMD Millipore Corporation | Contactless power solution for low power sensors in bioprocess environments |
8501120, | Mar 26 2008 | EMD Millipore Corporation | Contactless power solution for low power sensors in bioprocess environments |
8753569, | Jul 16 2008 | EMD Millipore Corporation | Temperature hardened pharmaceutical devices |
8798954, | Jul 16 2008 | EMD Millipore Corporation | Gamma and temperature hardened pharmaceutical devices |
8957778, | Aug 02 2007 | EMD Millipore Corporation | Sampling system |
9072996, | Nov 14 2008 | Sartorius Stedim Biotech GmbH | Method and apparatus for carrying out integrity tests of a non-wetted filter element |
9183723, | Jan 31 2012 | CLEAN ALERT INNOVATIONS, LLC | Filter clog detection and notification system |
9186609, | Jan 31 2012 | CLEAN ALERT INNOVATIONS, LLC | Filter clog sensing system and method for compensating in response to blower speed changes |
9429585, | Aug 02 2007 | EMD Millipore Corporation | Sampling system |
D950728, | Jun 25 2019 | Cilag GmbH International | Surgical staple cartridge |
D952144, | Jun 25 2019 | Cilag GmbH International | Surgical staple cartridge retainer with firing system authentication key |
D964564, | Jun 25 2019 | Cilag GmbH International | Surgical staple cartridge retainer with a closure system authentication key |
ER4905, | |||
ER5971, | |||
ER7067, | |||
ER7212, | |||
ER8736, | |||
ER9597, |
Patent | Priority | Assignee | Title |
4055075, | Apr 08 1976 | Flanders Filters, Inc. | Method and apparatus for the leak testing of filters |
5674381, | Mar 29 1993 | TACK SMART FILTER TECHNOLOGY B V | Assembly of filtering apparatus and replaceable filter; and filtering apparatus and filter for use therein |
6186140, | Mar 14 1997 | 3M Innovative Properties Company | Respiratory filter element having a storage device for keeping track of filter usage and a system for use therewith |
DE10000435, | |||
DE19627595, | |||
GB2303082, | |||
WO2074418, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Oct 14 2002 | Sartorius AG | (assignment on the face of the patent) | / | |||
Mar 19 2004 | JORNITZ, MAIK | SARTORIUS AB | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015872 | /0254 | |
Mar 19 2004 | BAUMFALK, REINHARD | SARTORIUS AB | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015872 | /0254 | |
Mar 19 2004 | LAUSCH, RALF | SARTORIUS AB | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015872 | /0254 | |
Mar 19 2004 | OLDENDORF, CHRISTIAN | SARTORIUS AB | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015872 | /0254 | |
Mar 19 2004 | REIF, OSCAR-WERNER | SARTORIUS AB | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015872 | /0254 | |
Jun 19 2007 | Sartorius AG | Sartorius Biotech GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 019573 | /0722 | |
Jul 16 2007 | Sartorius Biotech GmbH | Sartorius Stedim Biotech GmbH | CHANGE OF NAME SEE DOCUMENT FOR DETAILS | 020072 | /0522 |
Date | Maintenance Fee Events |
Oct 21 2009 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Oct 23 2013 | M1552: Payment of Maintenance Fee, 8th Year, Large Entity. |
Nov 09 2017 | M1553: Payment of Maintenance Fee, 12th Year, Large Entity. |
Date | Maintenance Schedule |
May 23 2009 | 4 years fee payment window open |
Nov 23 2009 | 6 months grace period start (w surcharge) |
May 23 2010 | patent expiry (for year 4) |
May 23 2012 | 2 years to revive unintentionally abandoned end. (for year 4) |
May 23 2013 | 8 years fee payment window open |
Nov 23 2013 | 6 months grace period start (w surcharge) |
May 23 2014 | patent expiry (for year 8) |
May 23 2016 | 2 years to revive unintentionally abandoned end. (for year 8) |
May 23 2017 | 12 years fee payment window open |
Nov 23 2017 | 6 months grace period start (w surcharge) |
May 23 2018 | patent expiry (for year 12) |
May 23 2020 | 2 years to revive unintentionally abandoned end. (for year 12) |